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an investigation of dual stator winding induction machines

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Equations similar to (4.15-4.16) were used in [4.9] to calculate the developed<br />

electromagnetic torque <strong>of</strong> the three-phase synchronous machine. Using the measured<br />

motor terminal voltages <strong>an</strong>d phase currents to synthesize (4.15-4.16), the measured<br />

starting torque <strong>of</strong> the tested synchronous machine was shown to compare favorably with<br />

the calculated torque. Hence, the M<strong>an</strong>ley-Rowe power-frequency relationships set forth<br />

in this paper to determine the electromagnetic torques <strong>of</strong> electric <strong>machines</strong> gives a firmer<br />

theoretical basis for the input power based electromagnetic torque determination <strong>an</strong>d the<br />

experimental work in [4.9].<br />

4.6 Simulation Results<br />

Based on the full model <strong>of</strong> the <strong>dual</strong> <strong>winding</strong> <strong>induction</strong> machine <strong>an</strong>d the calculation <strong>of</strong><br />

the induct<strong>an</strong>ces shown in the previous Sections, the simulation <strong>of</strong> the <strong>dual</strong> <strong>stator</strong> <strong>winding</strong><br />

<strong>induction</strong> machine under mixed eccentricity condition was undertaken, in which only the<br />

fundamental component <strong>of</strong> the rotor circuit q-d tr<strong>an</strong>sformation is considered. The mixed<br />

eccentricity condition, in which 20% static rotor eccentricity <strong>an</strong>d 5% dynamic rotor<br />

eccentricity are combined, is considered in the computer simulation results. Some <strong>of</strong> the<br />

calculated parameters which are const<strong>an</strong>t are given in Table 3.1. The no-load starting<br />

tr<strong>an</strong>sient simulation results are shown in Figure 4.28 <strong>an</strong>d the corresponding rotor bar<br />

currents are shown in Figure 4.30 when the two sets <strong>of</strong> <strong>winding</strong>s are fed with voltages<br />

satisfying const<strong>an</strong>t voltage/Hertz in which the ratio <strong>of</strong> the frequency <strong>of</strong> the 6-pole <strong>stator</strong><br />

<strong>winding</strong> set to those <strong>of</strong> the 2-pole <strong>stator</strong> <strong>winding</strong> set is 3. The frequencies <strong>of</strong> the ABC (2-<br />

pole) <strong>an</strong>d XYZ (6-pole) <strong>stator</strong> <strong>winding</strong> sets are 30 Hz <strong>an</strong>d 90 Hz respectively. The line-<br />

to-line voltages <strong>of</strong> the ABC (2-pole) <strong>an</strong>d XYZ (6-pole) <strong>stator</strong> <strong>winding</strong> sets are 67 V <strong>an</strong>d<br />

183

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